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流动环境诱导食管癌细胞表型可塑性

Dynamic Microenvironment Induces Phenotypic Plasticity of Esophageal Cancer Cells Under Flow.

机构信息

Bio-Acoustic MEMS in Medicine Laboratory, Canary Center at Stanford for Early Cancer Detection, Department of Radiology, Department of Electrical Engineering (by courtesy), Stanford School of Medicine, Palo Alto, California, 94304, USA.

Department of Basic Oncology, Institute of Oncology, Dokuz Eylul University, Izmir, 35340, Turkey.

出版信息

Sci Rep. 2016 Dec 2;6:38221. doi: 10.1038/srep38221.

Abstract

Cancer microenvironment is a remarkably heterogeneous composition of cellular and non-cellular components, regulated by both external and intrinsic physical and chemical stimuli. Physical alterations driven by increased proliferation of neoplastic cells and angiogenesis in the cancer microenvironment result in the exposure of the cancer cells to elevated levels of flow-based shear stress. We developed a dynamic microfluidic cell culture platform utilizing eshopagael cancer cells as model cells to investigate the phenotypic changes of cancer cells upon exposure to fluid shear stress. We report the epithelial to hybrid epithelial/mesenchymal transition as a result of decreasing E-Cadherin and increasing N-Cadherin and vimentin expressions, higher clonogenicity and ALDH positive expression of cancer cells cultured in a dynamic microfluidic chip under laminar flow compared to the static culture condition. We also sought regulation of chemotherapeutics in cancer microenvironment towards phenotypic control of cancer cells. Such in vitro microfluidic system could potentially be used to monitor how the interstitial fluid dynamics affect cancer microenvironment and plasticity on a simple, highly controllable and inexpensive bioengineered platform.

摘要

肿瘤微环境是由细胞和非细胞成分组成的高度异质的环境,受到外部和内在的物理和化学刺激的调节。肿瘤微环境中肿瘤细胞增殖和血管生成所导致的物理改变,使癌细胞暴露于升高的流动剪切应力水平下。我们开发了一种动态微流控细胞培养平台,利用食管癌细胞作为模型细胞,研究癌细胞在暴露于流体剪切应力下的表型变化。我们报告了上皮细胞向混合上皮/间充质转化,这是由于 E-钙黏蛋白表达降低,N-钙黏蛋白和波形蛋白表达增加,在层流条件下培养的癌细胞的克隆形成能力更高,ALDH 阳性表达更高,与静态培养条件相比。我们还寻求在肿瘤微环境中调节化疗药物,以控制癌细胞的表型。这种体外微流控系统可以潜在地用于监测间质液动力学如何影响肿瘤微环境和肿瘤细胞的可塑性,它是一个简单、高度可控和廉价的生物工程平台。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/effc/5133540/03ce84806a7e/srep38221-f1.jpg

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